In situ SEM study of a lithium deposition and dissolution mechanism in a bulk-type solid-state cell with a Li2S–P2S5 solid electrolyte
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- 17 September 2013
- journal article
- research article
- Published by Royal Society of Chemistry (RSC) in Physical Chemistry Chemical Physics
- Vol. 15 (42), 18600-18606
- https://doi.org/10.1039/c3cp51059j
Abstract
In situ SEM observation of a lithium deposition and dissolution process in an all-solid-state lithium metal battery using a sulfide-based solid electrolyte (SE) was carried out. We revealed visually that the morphology of lithium deposition varies with the operating current densities. At current densities higher than 1 mA cm−2, local lithium deposition triggers large cracks, leading to a decrease in the reversibility of lithium deposition and dissolution. On the other hand, at a low current density of 0.01 mA cm−2, its homogeneous deposition, which enables the reversible deposition and dissolution, hardly brings about the occurrence of unfavorable cracks. These results suggest that homogeneous lithium deposition on the SE and the suppression of the growth of lithium metal along the grain boundaries inside the SE are keys to achieve the repetitive lithium deposition and dissolution reaction without deterioration of the SE.Keywords
This publication has 52 references indexed in Scilit:
- A lithium superionic conductorNature Materials, 2011
- Electrical and electrochemical properties of glass–ceramic electrolytes in the systems Li2S–P2S5–P2S3 and Li2S–P2S5–P2O5Solid State Ionics, 2011
- Interfacial Observation between LiCoO2 Electrode and Li2S−P2S5 Solid Electrolytes of All-Solid-State Lithium Secondary Batteries Using Transmission Electron MicroscopyChemistry of Materials, 2009
- Characterization of all-solid-state lithium secondary batteries using CuxMo6S8−y electrode and Li2S–P2S5 solid electrolyteJournal of Power Sources, 2009
- Preparation of lithium ion conducting glasses and glass–ceramics for all-solid-state batteriesJournal of Non-Crystalline Solids, 2008
- New, Highly Ion‐Conductive Crystals Precipitated from Li2S–P2S5 GlassesAdvanced Materials, 2005
- All-solid-state Li/S batteries with highly conductive glass–ceramic electrolytesElectrochemistry Communications, 2003
- Formation of superionic crystals from mechanically milled Li2S–P2S5 glassesElectrochemistry Communications, 2003
- Lithium Ionic Conductor Thio-LISICON: The Li[sub 2]S-GeS[sub 2]-P[sub 2]S[sub 5] SystemJournal of the Electrochemical Society, 2001
- Synthesis and electrochemical properties of lithium ion conductive glass, Li3PO4Li2SSiS2Solid State Ionics, 1994